Atomistic Investigation of Plastic Deformation and Dislocation Motion in Uranium Mononitride
M Abdulhameed and B Beeler and A Claisse, APPLIED SCIENCES-BASEL, 15, 2666 (2025).
DOI: 10.3390/app15052666
Uranium mononitride (UN) is a promising advanced nuclear fuel due to its
high thermal conductivity and high fissile density. However, many
aspects of its mechanical behavior, particularly at reactor-relevant
conditions, remain unclear. In this study, molecular dynamics (MD)
simulations were employed to investigate the deformation behavior and
dislocation motion in UN. We found that the Kocevski potential predicts
the principal slip system as 12 < 110 >110, aligning with experimental
data. On the other hand, the Tseplyaev potential predicts slip to
primarily occur on 12 < 110 >111. MD simulations of stress-strain
behavior were used to estimate the nanoindentation hardness, revealing
that the Kocevski potential accurately predicts hardness even though it
fails to model dynamic plasticity. Complete dislocation mobility
functions have been fitted for the edge and screw dislocations in both
the thermally activated and phonon-drag regimes. The 300 K linear
mobility of the edge dislocation using the Tseplyaev potential was found
to be 817 Pa-1
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